The same thing happened to me! I was watching another video before this and while it was quite well-made and to the point, they didn't proof that p was indeed a prime number. I figured that seemed like the case but I had to come watch this video to see it for myself!!

Same

I don't think that the explanation was wrong. We first begon with stating that there are finitely many primes. Then he concluded that if you take all the primes and take the product of them and add one, then you would get a prime. However, 2*3*5*7*11*13+1 is not a prime, but 2, 3, 5, 7,11 and 13 aren't all the primes. In order to prove his statement wrong, you would have the take the product of all the primes, which of course is inpossible, since there are infinitely many. Please tell me if there's something wrong with my explanation.

He writes normally and then the video is flipped.

@@MrConverse That's makes a lot more sense, thanks =)

Can you please do a cool maths series!!???? Or is this already a thing???

That’s relatively straightforward as well. Assume that (sqrt 2) is equal to a reduced rational fraction of the form (m/n). Squaring both sides, we get that 2 = m^2/n^2. Cross multiplying gives us 2n^2 = m^2. Since the left hand side is obviously an even positive number, m^2 must be positive and even as well, so m must also be positive and even. So let m = 2c, where c is any positive integer. Now we can see that m^2 is equal to 4c^2 and also equal to 2n^2 from earlier, so 4c^2 = 2n^2, and n^2 = 2c^2. So n^2 is even, and therefore so is n. But if m and n are both even, that means they have a common factor of 2, which contradicts the statement that the beginning fraction of m/n was in reduced form. Therefore, such a fraction m/n cannot exist, so the square root of 2 cannot be expressed as a rational fraction.

because he's in the computer

he defined the number as such

Most welcome 😊

This is same method

@@youssefdirani It's not the same, look at the contradiction in each case.

if you add one, yes.

@@DrTrefor Oops yeah thats what I meant

@@DrTrefor actually I thought you were right until I saw the next comment of W and the subcomment which gave a counter example. Hope you check

@@DrTrefor no sir

No be careful. Im still a beginner myself but this is not what this proof states. For example take the first 6 prime: 2*3*5*7*11*13=30030+1=30031. This is not divisible by any prime that came before it. But if said our pn was 6 then pn+1 should be a prime right? Not exactly, 30031 divides by 59 and 509. Which are in fact 2 primes but they are primes bigger than the pn+1. So what this shows is that pn+1 will be a factor of primes or possibly even a prime by itself from what ive read. What he shows in the video is that for a product of primes up to an arbitrary pn+1 it does not divide by the previous primes. So with respect to p he chose yes it is "prime" but if you continue along you find that 30031 is in fact composite, essentially its a never ending loop.

Hey, I’ve seen a few of your vids before and enjoyed them, nice job! It’s true that it is commonly written both ways, although I’ll note that Euclid himself didn’t frame it as a proof by contradiction so probably better not to even ignoring aesthetics. I’m not sure I have strong feelings one way or the other, perhaps it is common because pedagogically it is nice to see something ~deep~ right after one learns about the concept of proof by contradiction.

@@DrTrefor Hey, thank you! Lightboard crew 👍 Admittedly, I haven't looked at Euclid's original proof, which might address my concerns. I don't really have an issue with proofs by contradiction, and I'm not saying that it would be preferable to prove this directly with a different proof rather than a proof by contradiction. I just find that in this particular case, it almost reads like it's already a direct proof as written, just "wrapped" in a proof by contradiction heading and footer, if that makes sense. It's like it's saying: Assume the set P of all primes is finite. But, we can show that this finite set is necessarily missing a prime. Therefore P does not contain all primes, which is a contradiction. Therefore the set P is not finite. If we are able to argue that an arbitrary finite set is necessarily missing a prime, it seems like we're already done. But maybe I'm taking a leap that I'm not noticing here.

Sadly, it’s been some years since I’ve had access to a lightboard, so I’m stuck with a greenscreen which is nowhere near as awesome:/ But ya, I don’t disagree at all, it is sort of an unnecessary framing isn’t it.

@@DrTrefor Do you think it's effectively the same as a Cantor diagonalization argument here? They seem to be identical arguments when we look at it that way. "For any finite list of primes, here's a prime not on the list. So, the cardinality of the prime numbers is strictly larger than the cardinality of any finite set." "For any ordered list of real numbers, here's a real number not on the list. So the cardinality of the real numbers is strictly larger than the cardinality of the natural numbers."

It actually doesnt. One counter example is 2*3*5*7*11*13+1. It equals 30031 and is divisible by 59 so its composite. Reason this doesnt prove that is we assume there exist no primes between 13 and 2*3*5*7*11*13+1, which in most cases isnt true.

@Dr Trefor Bazett here is an interesting answer

That's not actually true. 2*3*5*7*11*13 + 1 is composite.

Trefor Bazett - While in your proof by contradiction, it works to say that p1*p2*...*pn+1 is prime, I think it might be better to say that this number is not divisible by any primes on the list. Then, the contradiction is that p must be divisible by at least one prime on the list but is also not divisible by any prime on the list. The reason I would make this distinction is because of questions I've seen from this approach before. Sometimes people will do their own computations to get some intuition for the proof. But here's the rub. It doesn't take too much work to find this example: 2*3*5*7*11*13+1 = 30031 = 59*509. Seeing that 2*3*5*7*11*13+1 is not prime, but your argument relies on numbers like this being prime, people begin to doubt the argument, thinking that you must have made a subtle error in your reasoning. There is indeed something subtle happening in the argument when concluding that p is prime, but it's not an error! The conclusion that p is prime relies on the assumption that p1, ..., pn is a _complete_ list of primes, not just _any_ list of primes. This sort of thing is easy to miss when being introduced to a proof by contradiction.

Let me correct you , as in your example above it was supposed to be a full set of all the primes up to the last one, and not a subset , but the primes 59 and 509 are bigger than the biggest known prime and hence they are enlarging the group

I much prefer your method of proving this (and have for a while). It's just cleaner. A lot of people like the "Every integer greater than 1 is either prime or divisible by a prime" approach to saying things, for some reason, even though "Every integer greater than 1 is divisible by a prime" would suffice. I think it stems back to how people tend to think of factorizations as having at least two factors (shunning unary products), so they feel they need to word Fundamental Theorem of Arithmetic as integers greater than 1 either being prime or having a prime factorization. From this perspective, if an integer greater than 1 isn't divisible by any primes, then since we have the disjunction "is prime or is divisible by a prime", the other part of the disjunction (is prime) must be true.

just a link!

p1 can be assumed the number 2, so no, p cannot be divisible by 2 hence by an even number

P could be a prime number, but it could also be a composite divisible by a prime larger than p sub n. A better proof would be to go to the start with P on one side and the product of all primers plus one on the other side. Then subtract one from both sides. Now divide both sides by any one of the known primes. Here we have some integer on the right equal to some mixed fraction on the left which is a contradiction. QED

To make something that is prime, as otherwise p would be composite.

Dr. Bazett's answer is absolutely correct; I am not in any way discrediting it. I just want to provide some interesting additional context that I have from teaching number theory a few times. I like to break things down to a specific lemma: Suppose m, n, and k are integers, and suppose k divides m. Then k divides n if and only if k divides m+n. The proof, I think, is doable as an exercise! (It's pretty much an exercise in the distributive property/factoring and the definition of divisibility.) Now, the goal of the proof that there are infinitely many primes is to cook up something that isn't divisible by any of our finitely many primes. How can we do that? Well, from this lemma, we can find an "m" which is divisible by every one of our primes, and an "n" which isn't divisible by any of our primes. Then the lemma tells us that m+n won't be divisible by any of our primes. What's one way to cook up a number which is divisible by all of our primes? Multiply them all together! And what's a number that isn't divisible by any prime? There's only one such positive number: 1 itself. This explains where p=p1p2...p3+1 comes from. But you can also use this lemma for pretty much the opposite purpose too! One of the (imo) hardest problems I assigned to my number theory students was the following: For every positive integer c, prove that there exists a sequence of c consecutive positive integers which are all composite. As an example, for c = 3, the sequence 8, 9, 10 consists of 3 consecutive positive integers which are all composite. Again, the hint for solving this is to use the lemma I mentioned above. Think about ways that you could cook up a bunch of m and n's to get the corresponding m+n's to be a sequence of composite consecutive positive integers. Also think about how p=p1p2...p3+1 in the proof that there are infinitely many primes and how that might relate here. Even with this hint, I think it's a tough problem! But I think it's also really rewarding to work hard on this problem :)

It's so that the resulting number cannot be divisible by any of the primes in question.

This is true...but that’s the crux of the proof. What we are saying is that if p is prime, we’ve found another prime to add to our list from p1 to pn. If p is NOT prime, then there must be another prime q on the list somewhere between pn and p. Either way, the list of primes from p1 to pn cannot be a complete list. No matter how many primes we start with from p1 to pn, we can always show that the list is incomplete. Since this can be done regardless of the size of the initial prime list, the list must be infinitely long.

Yes, the same argument does work.

Even if u do the answer will be the same because we have another theorem which is: If p divides a², then p divides a. And in this problem, p doesn't divides a therefore p won't divide a² nor will p² do. Hope your understand

Thanks. I appreciate your explanations, but I struggle with algebra.

In other words, because there is a plus sign, the Distributive Property is used (p1 is applied to each part). “p1p2…pn” is divided by p1. “1” is divided by p1.

@@georgeseese You can think of it as ((p1p2....pn) + 1) / p1, each part will be divided hence why there is a remainder of 1 / pi for any p that you choose

Because that multiplication plus one isn’t of the form of a mersenne prime

@@DrTrefor Fair enough 😂

Because 3 is the prime number but 3+1 is not the prime number

Probably reversed the image

Why on Earth should it work? 2 is a prime. 2*2 is composite. 2*2*2 is composite. 2*2*2*2 is composite. And so on - there obviously are infinitely many composite numbers, and that follows from the fact that there exists at least one prime number. (In fact, 2, multiplied by any integer greater than 1, is composite.)

Munyaradzi Piki By doing so, you're generating a number N that is guaranteed not to be evenly divisible by any of the primes on your finite list. If this new number N is indeed composite, you should be able to factor it into a product of distinct primes that are on your list. However, you won't be able to because you'll always get that remainder of 1 when you divide N by any of them. This means either that N is still composite and has prime factors not on our finite list, or that N is prime itself. Either way, we have found a new prime or primes that were not on our finite list. So basically, no matter how many primes you are given on your initial finite list, you can always show that there must be another prime that is not on the list. Therefore, there are infinitely many primes.

Ravindra Deshmukh Thanks! It may sound a little counterintuitive at first, but sometimes that's what proof by contradiction does...it forces you to think outside the box!

Here is another explanation. Hope u are able to understand it form here. kzbin.info/www/bejne/nmKxpmeKlqp4oK8&t=

If we didn't, the number certainly wouldn't be prime as it would be divisible by any of the primes like p1

@@DrTrefor but if you add 1 is also not prime like 3x5+1=16

@@khanjra Was thinking the same question until seeing your comment. I ignored 2. So now with 2, basically every multiple would be even and with +1, it must be odd. Thanks.

@@faizahbegum5257 A product of some primes +1 doesn't need to be a prime, but if it's not, it must be divisible by some prime not in the list. So 3*5+1 is not divisible by either 3 or 5, proving that {3,5} are not all primes that exist. (It happens to be divisible by the prime number 2.)

@@MikeRosoftJH thanks soo much